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Role of Mitochondrial Calcium and the Permeability Transition Pore in Regulating Cell Death

期刊

CIRCULATION RESEARCH
卷 126, 期 2, 页码 280-293

出版社

LIPPINCOTT WILLIAMS & WILKINS
DOI: 10.1161/CIRCRESAHA.119.316306

关键词

calcium; cell death; mitochondria; permeability; reactive oxygen species

资金

  1. National Heart Lung and Blood Institute at the National Institutes of Health [ZIA HL002066, ZIA HL006059]
  2. Foundation Leducq [6CVD04]
  3. NIH Medical Research Scholars Program a public-private partnership - NIH
  4. Doris Duke Charitable Foundation
  5. American Association for Dental Research
  6. Colgate-Palmolive Company
  7. NATIONAL HEART, LUNG, AND BLOOD INSTITUTE [ZIAHL002066] Funding Source: NIH RePORTER

向作者/读者索取更多资源

Adult cardiomyocytes are postmitotic cells that undergo very limited cell division. Thus, cardiomyocyte death as occurs during myocardial infarction has very detrimental consequences for the heart. Mitochondria have emerged as an important regulator of cardiovascular health and disease. Mitochondria are well established as bioenergetic hubs for generating ATP but have also been shown to regulate cell death pathways. Indeed many of the same signals used to regulate metabolism and ATP production, such as calcium and reactive oxygen species, are also key regulators of mitochondrial cell death pathways. It is widely hypothesized that an increase in calcium and reactive oxygen species activate a large conductance channel in the inner mitochondrial membrane known as the PTP (permeability transition pore) and that opening of this pore leads to necroptosis, a regulated form of necrotic cell death. Strategies to reduce PTP opening either by inhibition of PTP or inhibiting the rise in mitochondrial calcium or reactive oxygen species that activate PTP have been proposed. A major limitation of inhibiting the PTP is the lack of knowledge about the identity of the protein(s) that form the PTP and how they are activated by calcium and reactive oxygen species. This review will critically evaluate the candidates for the pore-forming unit of the PTP and discuss recent data suggesting that assumption that the PTP is formed by a single molecular identity may need to be reconsidered.

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